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Dealing with categorical missing data using CleanerR

Dealing with categorical missing data using CleanerR

24/06/2019
Authors
Rafael Silva Pereira, Fábio Porto

Abstract:

Missing data is a common problem in the world of data analysis. They appear in datasets due to a multitude of reasons, from data integration to poor data input. When faced with the problem, the analyst must decide what to do with the missing data since its not always advisable to discard these values from your analysis. On this paper we shall discuss a method that takes into account information theory and functional dependencies to best imput missing values.


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Dexl Members

Fabio Porto
Rafael Silva Pereira

Institutions

LNCC